Hampson Christopher J, Smith Moli P, Arciero Luca L, Collins Christopher M, Daniels Luke M, Manning Troy D, Gaultois Michael W, Claridge John B, Rosseinsky Matthew J
Department of Chemistry, University of Liverpool, Materials Innovation Factory 51 Oxford Street Liverpool L7 3NY UK
Chem Sci. 2024 Jan 2;15(7):2640-2647. doi: 10.1039/d3sc05688k. eCollection 2024 Feb 14.
High-throughput synthetic methods are well-established for chemistries involving liquid- or vapour-phase reagents and have been harnessed to prepare arrays of inorganic materials. The versatile but labour-intensive sub-solidus reaction pathway that is the backbone of the functional and electroceramics materials industries has proved more challenging to automate because of the use of solid-state reagents. We present a high-throughput sub-solidus synthesis workflow that permits rapid screening of oxide chemical space that will accelerate materials discovery by enabling simultaneous expansion of explored compositions and synthetic conditions. This increases throughput by using manual steps where actions are undertaken on multiple, rather than individual, samples which are then further combined with researcher-hands-free automated processes. We exemplify this by extending the BaYSnO solid solution beyond the reported limit to a previously unreported composition and by exploring the Nb-Al-P-O composition space showing the applicability of the workflow to polyanion-based compositions beyond oxides.
高通量合成方法在涉及液相或气相试剂的化学领域已得到广泛应用,并已用于制备无机材料阵列。作为功能和电子陶瓷材料行业核心的通用但劳动密集型的亚固相线反应途径,由于使用固态试剂,在自动化方面已被证明更具挑战性。我们提出了一种高通量亚固相线合成工作流程,该流程允许快速筛选氧化物化学空间,通过同时扩展探索的成分和合成条件来加速材料发现。这通过在多个而非单个样品上进行操作的手动步骤来提高通量,然后这些步骤再与无需研究人员操作的自动化过程相结合。我们通过将BaYSnO固溶体扩展到超过报道的极限,达到先前未报道的成分,并通过探索Nb-Al-P-O成分空间来举例说明该工作流程对除氧化物之外的基于聚阴离子的成分的适用性。